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April 2, 2015Circulation Arrhythmia and Electrophysiology116 citations

Forward Problem of Electrocardiography

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LBLaura BearUniversité de Bordeaux
Leo K. Cheng
Leo K. ChengElectrophysiology
ILIan J. LeGriceUniversity of Auckland

Structured PICO

Does the inclusion of inhomogeneous electric properties in forward models improve the accuracy of simulated body surface potentials compared to homogeneous models in a porcine model?

P
Population
Anesthetized closed-chest pigs (n=5) undergoing sinus rhythm and epicardial and endocardial ventricular pacing (65 records in total)
I
Intervention
Inhomogeneous forward models (incorporating lungs, anisotropic skeletal muscle, and subcutaneous fat) for simulating body surface potentials
C
Comparator
Homogeneous forward models (isotropic electric properties)
O
Outcome
Accuracy of simulated body surface potentials compared to measured body surface potentials (assessed via correlation coefficients, potential extrema differences, and attenuation)surrogate

Homogeneous volume conductor models introduce substantial spatial inaccuracies in predicting body surface potentials, which are only partially mitigated by inhomogeneous models, potentially affecting inverse reconstructions.

Abstract

BACKGROUND: The relationship between epicardial and body surface potentials defines the forward problem of electrocardiography. A robust formulation of the forward problem is instrumental to solving the inverse problem, in which epicardial potentials are computed from known body surface potentials. Here, the accuracy of different forward models has been evaluated experimentally. METHODS AND RESULTS: Body surface and epicardial potentials were recorded simultaneously in anesthetized closed-chest pigs (n=5) during sinus rhythm, and epicardial and endocardial ventricular pacing (65 records in total). Body surface potentials were simulated from epicardial recordings using experiment-specific volume conductor models constructed from magnetic resonance imaging. Results for homogeneous (isotropic electric properties) and inhomogeneous (incorporating lungs, anisotropic skeletal muscle, and subcutaneous fat) forward models were compared with measured body surface potentials. Correlation coefficients were 0.85±0.08 across all animals and activation sequences with no significant difference between homogeneous and inhomogeneous solutions (P=0.85). Despite this, there was considerable variance between simulated and measured body surface potential distributions. Differences between the body surface potential extrema predicted with homogeneous forward models were 55% to 78% greater than observed (P<0.05) and attenuation of potentials adjacent to extrema were 10% to 171% greater (P<0.03). The length and orientation of the vector between potential extrema were also significantly different. Inclusion of inhomogeneous electric properties in the forward model reduced, but did not eliminate these differences. CONCLUSIONS: These results demonstrate that homogeneous volume conductor models introduce substantial spatial inaccuracies in forward problem solutions. This probably affects the precision of inverse reconstructions of cardiac potentials, in which this assumption is made.

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Cite This Study

Bear et al. (2015) studied this question.

synapsesocial.com/papers/6a1bc94926cb5670aa9ce1ddhttps://doi.org/10.1161/circep.114.001573
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